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Time-varying state-space model identification of an on-orbit rigid-flexible coupling spacecraft using an improved predictor-based recursive subspace algorithm

机译:基于改进的基于预测变量的递归子空间算法对在轨刚柔耦合航天器的时变状态空间模型识别

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Spacecraft control problems frequently require the latest model parameters to provide timely updates to the controller parameters. This study investigates the recursive identification problem in a the time-varying state-space model of an on-orbit rigid-flexible coupling spacecraft. An improved recursive predictor-based subspace identification (RPBSID) method is presented to increase on-orbit identification efficiency. Compared with the classical RPBSID and other subspace methods, the improved RPBSID applies the affine projection sign algorithm. Accordingly, the system state variables can be determined directly via recursive computation. Thus, the proposed algorithm does not require constructing the corresponding Hankel matrix or implementing singular value decomposition (SVD) at each time instant. Consequently, the amount of data used in the identification process is reduced, and the computational complexity of the original method is decreased. The time-varying state-space model of the spacecraft is estimated through numerical simulations using the classical RPBSID, improved RPBSID, and SVD-based approaches. The computational efficiency and accuracy of the three methods are compared for different system orders. Computed results of the test response demonstrate that the improved RPBSID algorithm not only achieves sufficient identification accuracy but also exhibits better computational efficiency than the classical methods in identifying the parameters of the spacecraft time-varying state-space model.
机译:航天器控制问题经常需要最新的模型参数来及时更新控制器参数。这项研究调查了在轨时刚柔耦合航天器的时变状态空间模型中的递归辨识问题。提出了一种改进的基于递归预测子的子空间识别(RPBSID)方法,以提高在轨识别效率。与经典的RPBSID和其他子空间方法相比,改进后的RPBSID应用了仿射投影符号算法。因此,可以直接通过递归计算确定系统状态变量。因此,所提出的算法不需要在每个时刻构造相应的汉克尔矩阵或实现奇异值分解(SVD)。因此,减少了在识别过程中使用的数据量,并且降低了原始方法的计算复杂度。通过使用经典RPBSID,改进的RPBSID和基于SVD的方法进行数值模拟,可以估算航天器的时变状态空间模型。比较了三种方法在不同系统阶数下的计算效率和准确性。测试响应的计算结果表明,改进的RPBSID算法不仅可以实现足够的识别精度,而且在识别航天器时变状态空间模型参数方面比传统方法具有更高的计算效率。

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